A mathematical framework for multiscale science and engineering : the variational multiscale method and interscale transfer operators.
Author(s) -
Gregory J. Wagner,
Samuel Scott Collis,
Jeremy Alan Templeton,
Richard B. Lehoucq,
Michael L. Parks,
Reese E. Jones,
Stewart Silling,
Guglielmo Scovazzi,
Pavel Bochev
Publication year - 2007
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/922756
Subject(s) - multiscale modeling , computer science , science and engineering , statistical physics , physics , engineering , chemistry , engineering ethics , computational chemistry
This report is a collection of documents written as part of the Laboratory Directed Research and Development (LDRD) project A Mathematical Framework for Multiscale Science and Engineering: The Variational Multiscale Method and Interscale Transfer Operators. We present developments in two categories of multiscale mathematics and analysis. The first, continuum-to-continuum (CtC) multiscale, includes problems that allow application of the same continuum model at all scales with the primary barrier to simulation being computing resources. The second, atomistic-to-continuum (AtC) multiscale, represents applications where detailed physics at the atomistic or molecular level must be simulated to resolve the small scales, but the effect on and coupling to the continuum level is frequently unclear
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